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020 ▼a 9780438050563
035 ▼a (MiAaPQ)AAI10824553
035 ▼a (MiAaPQ)princeton:12638
040 ▼a MiAaPQ ▼c MiAaPQ ▼d 247004
0820 ▼a 610
1001 ▼a Simi, Allison K.
24510 ▼a Mechanical Regulation of Genomic Instability in Cancer.
260 ▼a [S.l.]: ▼b Princeton University., ▼c 2018.
260 1 ▼a Ann Arbor: ▼b ProQuest Dissertations & Theses, ▼c 2018.
300 ▼a 127 p.
500 ▼a Source: Dissertation Abstracts International, Volume: 79-10(E), Section: B.
500 ▼a Adviser: Celeste M. Nelson.
5021 ▼a Thesis (Ph.D.)--Princeton University, 2018.
520 ▼a It is expected that 1 in 3 people in the United States will develop cancer in their lifetime, and it remains the second leading cause of death worldwide. The research that drove most current cancer therapies focused primarily on the cancer cells
520 ▼a We found that increased stiffness induces multinucleation, regulated in part by signaling downstream of matrix metalloproteinase-3 (MMP 3). MMP3 is commonly upregulated in cancer and known to induce epithelial-mesenchymal transition (EMT), a pro
520 ▼a Following these findings, we investigated the specific mechanisms by which stiffness and EMT signaling induce multinucleation. We found that elevated levels of septin-6, a novel target of Snail, results in midbody persistence, abscission failure
520 ▼a Taken together, these data suggest that tissue stiffening during tumorigenesis synergizes with oncogenic signaling to promote genomic abnormalities that drive cancer progression, and provide the first evidence that mechanical stiffness of the mi
590 ▼a School code: 0181.
650 4 ▼a Bioengineering.
650 4 ▼a Oncology.
690 ▼a 0202
690 ▼a 0992
71020 ▼a Princeton University. ▼b Chemical and Biological Engineering.
7730 ▼t Dissertation Abstracts International ▼g 79-10B(E).
773 ▼t Dissertation Abstract International
790 ▼a 0181
791 ▼a Ph.D.
792 ▼a 2018
793 ▼a English
85640 ▼u http://www.riss.kr/pdu/ddodLink.do?id=T14998675 ▼n KERIS ▼z 이 자료의 원문은 한국교육학술정보원에서 제공합니다.
980 ▼a 201812 ▼f 2019
990 ▼a ***1012033